Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Geo-Steering with Advanced LWD Technologies - Placement of Maximum Reservoir Contact Wells in a Thinly Layered Carbonate Reservoir

View through CrossRef
Abstract Placing a maximum reservoir contact well in a thinly layered reservoir has always been a challenge. Experiences showed that the well trajectory could easily be steered out of the target, necessitating expensive plug-back and redrilling operations to ensure that the well is drilled as planned. With the deployment of advanced LWD technologies, such as density image (DI), resistivity image (RI) and directional deep resistivity (DDR) logging tools, and high speed real time satellite data transmission, well paths can be geosteered from anywhere and kept in a thinly layered reservoir. The first Saudi Aramco field examples of utilizing RI and DDR are shown to demonstrate the added values of new technologies in geosteering difficult-to-drill wells. In some of the examples, images of density and resistivity are consistent and all could be used for geosteering. In other examples, wrong geosteering decisions would have been made had the DI been the only available tool. With the help of RI, reservoir contact of multi-lateral wells is increased. Examples also show that using DDR can prevent the well trajectory from being too close to the zero porosity rock layer or the underlying water. Introduction The main oil producing reservoir in the XA field is a massive carbonate reservoir. At the top of this good quality reservoir, there is a thin heterogeneous reservoir interval (named L1Z1) with rock porosity ranging from less than 10 porosity unit (pu) to more than 20 pu (Fig. 1). This L1Z1 is sandwiched between an 8' thick overlaying zero porosity anhydrite unit and an underlying 2' thick zero porosity anhydrite or close to zero porosity anhydritic dolomite unit. The thickness of L1Z1 ranges from less than a few feet to more than 20', with a typical thickness from 4' to 8'. Because of the rock quality, this thin layer has been difficult to target through traditional vertical producers. To improve oil recovery, maximum reservoir contact (MRC) multi-lateral (ML) horizontal wells have been drilled in the last few years; some drilled in new locations and others sidetracked from existing vertical wells. Conventional Geosteering Tools It is impossible to place a horizontal well in a thinly layered reservoir such as L1Z1 without the help of logging-while-drilling (LWD). Traditionally, LWD tools consist of gamma ray (GR), density, neutron, and resistivity (triple combo) measurements. Geosteering a horizontal well with only conventional LWD triple combo and GR are difficult because they do not provide direction of the measurement.
Title: Geo-Steering with Advanced LWD Technologies - Placement of Maximum Reservoir Contact Wells in a Thinly Layered Carbonate Reservoir
Description:
Abstract Placing a maximum reservoir contact well in a thinly layered reservoir has always been a challenge.
Experiences showed that the well trajectory could easily be steered out of the target, necessitating expensive plug-back and redrilling operations to ensure that the well is drilled as planned.
With the deployment of advanced LWD technologies, such as density image (DI), resistivity image (RI) and directional deep resistivity (DDR) logging tools, and high speed real time satellite data transmission, well paths can be geosteered from anywhere and kept in a thinly layered reservoir.
The first Saudi Aramco field examples of utilizing RI and DDR are shown to demonstrate the added values of new technologies in geosteering difficult-to-drill wells.
In some of the examples, images of density and resistivity are consistent and all could be used for geosteering.
In other examples, wrong geosteering decisions would have been made had the DI been the only available tool.
With the help of RI, reservoir contact of multi-lateral wells is increased.
Examples also show that using DDR can prevent the well trajectory from being too close to the zero porosity rock layer or the underlying water.
Introduction The main oil producing reservoir in the XA field is a massive carbonate reservoir.
At the top of this good quality reservoir, there is a thin heterogeneous reservoir interval (named L1Z1) with rock porosity ranging from less than 10 porosity unit (pu) to more than 20 pu (Fig.
1).
This L1Z1 is sandwiched between an 8' thick overlaying zero porosity anhydrite unit and an underlying 2' thick zero porosity anhydrite or close to zero porosity anhydritic dolomite unit.
The thickness of L1Z1 ranges from less than a few feet to more than 20', with a typical thickness from 4' to 8'.
Because of the rock quality, this thin layer has been difficult to target through traditional vertical producers.
To improve oil recovery, maximum reservoir contact (MRC) multi-lateral (ML) horizontal wells have been drilled in the last few years; some drilled in new locations and others sidetracked from existing vertical wells.
Conventional Geosteering Tools It is impossible to place a horizontal well in a thinly layered reservoir such as L1Z1 without the help of logging-while-drilling (LWD).
Traditionally, LWD tools consist of gamma ray (GR), density, neutron, and resistivity (triple combo) measurements.
Geosteering a horizontal well with only conventional LWD triple combo and GR are difficult because they do not provide direction of the measurement.

Related Results

Learnings from a New Slim Hole LWD NMR Technology
Learnings from a New Slim Hole LWD NMR Technology
Abstract This paper presents recent experience with a new 4 ¾-in logging-while-drilling (LWD) nuclear magnetic resonance (NMR) tool. Data from several wells drilled ...
Key Insights from Comparing LWD and Core NMR in Heavy Oil Carbonates
Key Insights from Comparing LWD and Core NMR in Heavy Oil Carbonates
Abstract Recent advances in LWD (logging-while-drilling) NMR (nuclear magnetic resonance) have enabled the simultaneous measurement of T1 and T2. These advances b...
Fracture Characterization in Basement Using the Latest Generation of LWD Sonic and Resistivity Image Logs
Fracture Characterization in Basement Using the Latest Generation of LWD Sonic and Resistivity Image Logs
Abstract Today, fractured basement is becoming an important contributor to the petroleum industry. However, drilling into the granitic basement reservoir is challeng...
Elimination of LWD (Logging While Drilling) Tool Modes Using Seismoelectric Data
Elimination of LWD (Logging While Drilling) Tool Modes Using Seismoelectric Data
Borehole acoustic logging-while-drilling (LWD) for formation evaluation has become an indispensable part of hydrocarbon reservoir assessment [F. Cittá, C. Russell, R. Deady and D. ...
Characteristics of Nuclear LWD Density Measurements in Elliptical Boreholes - A Modeling Study
Characteristics of Nuclear LWD Density Measurements in Elliptical Boreholes - A Modeling Study
Abstract The effect of tool rotation on the density porosity predicted in elliptical boreholes by a nuclear logging-while-drilling density (LWD) measurement is st...
Effects of steering of tracked combine harvester on shear damage of paddy field soil
Effects of steering of tracked combine harvester on shear damage of paddy field soil
During steering, the slide and slip of the tracked combine harvester relative to the ground will cause serious shear damage to the soil and reduce the steering performance of the v...
ANALISA PEMBEBANAN STATIK PADA RANCANGAN STEERING KNUCKLE MOBIL LISTRIK GANESHA SAKTI (GASKI)
ANALISA PEMBEBANAN STATIK PADA RANCANGAN STEERING KNUCKLE MOBIL LISTRIK GANESHA SAKTI (GASKI)
Steering knuckle merupakan komponen yang penting dalam sebuah kendaraan roda empat yang berfungsi untuk menahan beban yang diberikan pada masing – masing roda depan, dan berfungsi ...

Back to Top